Department of Chemistry, Muslim Arts College, Azhagiamandapam, Thiruvithancode, Kanyakumari District, (Affliated to Manonmanium Sundaranar University, Abishekapatti, Tirunelveli - 627012), Tiruchirappalli, Tamil Nadu, India.
Department of Physics, Marri Laxman Reddy Institute of Technology and Management, Hyderabad, India.
Luminescence. 2024 Sep;39(9):e4906. doi: 10.1002/bio.4906.
This study explores the synthesis, characterization, and photocatalytic performance of a SnO/TiO-Ni@rGO nanocomposite for tetracycline (TC) degradation under visible light irradiation. The nanocomposite was precisely designed to enhance structural stability, charge transfer efficiency, and catalytic activity. X-ray diffraction (XRD) analysis confirmed the structural integrity of the SnO/TiO-Ni@rGO composite, demonstrating excellent reusability and resistance to photo-corrosion after multiple cycles. Photocatalytic experiments revealed that the SnO/TiO-Ni@rGO nanocomposite significantly outperformed individual SnO/TiO-Ni and rGO catalysts, achieving a remarkable 94.6% degradation of TC within 60 min. The degradation process followed pseudo-first-order kinetics, with a rate constant (k) of 0.046 min. The Z-scheme charge transfer mechanism facilitated efficient separation and migration of photogenerated charge carriers, generating reactive oxygen species such as superoxide (•O ) and hydroxyl (•OH) radicals crucial for the oxidation of TC. Radical scavenger studies confirmed that superoxide and hydroxyl radicals were the primary active species. The SnO/TiO-Ni@rGO composite also exhibited excellent reusability, maintaining high catalytic performance over four consecutive cycles. These findings suggest that the SnO/TiO-Ni@rGO nanocomposite is a promising candidate for the efficient and sustainable photocatalytic degradation of persistent organic pollutants like TC, offering significant potential for environmental remediation applications.
本研究探索了 SnO/TiO-Ni@rGO 纳米复合材料的合成、表征及其在可见光照射下对四环素 (TC) 的光催化性能。该纳米复合材料经过精心设计,以提高结构稳定性、电荷转移效率和催化活性。X 射线衍射 (XRD) 分析证实了 SnO/TiO-Ni@rGO 复合材料的结构完整性,表明其具有优异的可重复使用性和抗光腐蚀性,经过多次循环后仍能保持稳定。光催化实验表明,SnO/TiO-Ni@rGO 纳米复合材料显著优于单独的 SnO/TiO-Ni 和 rGO 催化剂,在 60 分钟内实现了高达 94.6%的 TC 降解。降解过程遵循准一级动力学,速率常数 (k) 为 0.046 分钟。Z 型电荷转移机制促进了光生载流子的有效分离和迁移,产生了超氧自由基 (•O ) 和羟基自由基 (•OH) 等活性氧物种,这些物种对于 TC 的氧化至关重要。自由基捕获剂研究证实,超氧自由基和羟基自由基是主要的活性物种。SnO/TiO-Ni@rGO 复合材料还表现出优异的可重复使用性,在四个连续循环中保持了较高的催化性能。这些发现表明,SnO/TiO-Ni@rGO 纳米复合材料是一种很有前途的高效和可持续的光催化降解持久性有机污染物(如 TC)的候选材料,为环境修复应用提供了巨大的潜力。